Modelling of stellar convection.

Friedrich Kupka, Herbert J Muthsam
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引用次数: 51

Abstract

The review considers the modelling process for stellar convection rather than specific astrophysical results. For achieving reasonable depth and length we deal with hydrodynamics only, omitting MHD. A historically oriented introduction offers first glimpses on the physics of stellar convection. Examination of its basic properties shows that two very different kinds of modelling keep being needed: low dimensional models (mixing length, Reynolds stress, etc.) and "full" 3D simulations. A list of affordable and not affordable tasks for the latter is given. Various low dimensional modelling approaches are put in a hierarchy and basic principles which they should respect are formulated. In 3D simulations of low Mach number convection the inclusion of then unimportant sound waves with their rapid time variation is numerically impossible. We describe a number of approaches where the Navier-Stokes equations are modified for their elimination (anelastic approximation, etc.). We then turn to working with the full Navier-Stokes equations and deal with numerical principles for faithful and efficient numerics. Spatial differentiation as well as time marching aspects are considered. A list of codes allows assessing the state of the art. An important recent development is the treatment of even the low Mach number problem without prior modification of the basic equation (obviating side effects) by specifically designed numerical methods. Finally, we review a number of important trends such as how to further develop low-dimensional models, how to use 3D models for that purpose, what effect recent hardware developments may have on 3D modelling, and others.

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恒星对流的建模。
这篇综述考虑的是恒星对流的建模过程,而不是具体的天体物理结果。为了获得合理的深度和长度,我们只处理流体力学,省略了MHD。以历史为导向的介绍提供了对恒星对流物理学的第一次一瞥。对其基本特性的研究表明,仍然需要两种截然不同的模型:低维模型(混合长度、雷诺应力等)和“全”3D模拟。对于后者,给出了负担得起和负担不起的任务列表。对各种低维建模方法进行了分类,并阐述了各种低维建模方法应遵循的基本原则。在低马赫数对流的三维模拟中,不可能包含时间变化快的不重要声波。我们描述了一些方法,其中Navier-Stokes方程被修改以消除它们(非弹性近似等)。然后,我们转向处理完整的Navier-Stokes方程,并处理可靠和有效的数值原理。考虑了空间分异和时间推进方面。一个代码列表允许评估技术的状态。最近的一个重要发展是用专门设计的数值方法处理低马赫数问题,而无需事先修改基本方程(避免副作用)。最后,我们回顾了一些重要的趋势,如如何进一步开发低维模型,如何为此目的使用3D模型,最近的硬件发展可能对3D建模产生什么影响,等等。
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